CN2784921Y - Surface plasma resonance and surface enhanced Raman spectroscopy tester - Google Patents

Surface plasma resonance and surface enhanced Raman spectroscopy tester Download PDF

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Publication number
CN2784921Y
CN2784921Y CN 200520028360 CN200520028360U CN2784921Y CN 2784921 Y CN2784921 Y CN 2784921Y CN 200520028360 CN200520028360 CN 200520028360 CN 200520028360 U CN200520028360 U CN 200520028360U CN 2784921 Y CN2784921 Y CN 2784921Y
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sers
spr
prism
sample
angle
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CN 200520028360
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徐蔚青
赵冰
徐抒平
卜凤泉
徐翔
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Jilin University
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Jilin University
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Abstract

The utility model relates to a spectroscopy tester for the surface plasma resonance and the surface enhanced Raman combination, which belongs to the field of an analyzing experimental device. The utility model is characterized in that a light source system 1 is composed of a laser light source 21, a goniometer and a polarizing piece 22, wherein the goniometer can adjust an excitation angle and a polarization state, a sample table 2 is composed of a prism 23 and a basal piece 24, wherein the prism forms a right angle shape, or a semicircle shape or a hemispherical shape and the basal piece has SERS activity. An SERS signal detecting system is composed of a spectrometer and a CCD detector, and the mounting position of an SPR signal detector and the light source system 1 are respectively arranged at both sides of the prism 23. The utility model adopts an angle-changing inner reflection spectroscopy mode to detect the SPR, and meanwhile, the SERS spectroscopy is obtained by exciting samples in an evanescent field. The SPR spectroscopy and the SERS spectroscopy which is further enhanced can be obtained in synchronous mode under the angle of enhancing resonance, and the high SERS detection sensitivity and the signal to noise ratio can be obtained by measuring SERS signals in the dark background.

Description

Surface plasma body resonant vibration and surface reinforced Raman combined spectral investigator
Technical field
The utility model belongs to the experimental facilities field of analyzing.Be particularly related to the device of a kind of laser Raman spectroscopy and surface plasma resonance absorption spectrum synchronous detection.
Background technology
Finding that Surface enhanced raman spectroscopy (is called for short: SERS) in 30 years after the effect, although (be called for short: SPR) with SERS contact is closely arranged on the electromagnetism enhanced mechanism, few people are their simultaneous determinations and analyze its mutual relationship for the surface plasma resonance optical spectrum that various SERS active group basal surfaces or nano particle produce.Over the past two years, along with the fast development of these two technology, particularly people to the deepening continuously of the special size effect understanding of nanoparticle and film, this problem just begins to cause concern.The development of SPR-SERS spectrometer will provide important experimental basis for the research of SERS mechanism, also will become the important technical of further investigation surface and interface, nanostructured and characteristic.
The prior art close with the utility model is that the SPR-SERS of the Japanese Northwest Ozaki of university of institute (yukihiro Ozaki) group design detects spectrometer.The visible Fig. 1 of its primary structure, light-source system 1 are two light sources, and 11 is white light source, and 12 is LASER Light Source; 2 is sample stage, and 3 is silver particles or silver-colored single aggregation, is the silver-colored particle that has adsorbed the SERS bioactive molecule; 4 is microscopic system, and wherein 13 is object lens, and 14 is wave filter, and 15 is polarizer, and 16 is lens, and 17 is catoptron, and 18 is diaphragm, and 19 is eyepiece; 5 is signal detection system, comprises polychromator+CCD detecting device.Ozaki (yukihiro Ozaki) group considers that the electric field level that is positioned at the nano particle junction is relevant with the polarization of incident light situation, adopt the dark field microscope experimental provision, the SPR that laser excitation SERS composes and white light excites that has made respectively under the different polarization angle at the same position on the silver-colored aggregation that has adsorbed the SERS bioactive molecule composes, result of study finds that SPR and SERS increase simultaneously or reduce along with the polarization angle difference.They had both observed when the peak position of SPR band and had moved to higher-energy on same device, and observing SERS intensity again increases.
The SPR-SERS that the design of Ozaki group is built detects different test purpose of the two and the differences on the method for being with maximum of the present utility model of spectrometer, the physical significance difference that information reflected of the two detection just.It is the SPR absorption characteristic and the relation that is adsorbed on SERS (perhaps SERRS) effect of the probe molecule on this particle that is used to discuss single aggregation or particle that the SPR-SERS of Ozaki group detects spectrometer; And the utility model is used for detecting simultaneously the angle of nano metal film material to a certain wavelength excitation light generation SPR resonance absorption, and the SERS effect that this material and absorbing molecules effect produce under SPR resonance absorption angle.
The utility model content
The technical problems to be solved in the utility model is: design special apparatus structure, make it can detect detected sample on the absorption nano metal film material simultaneously to the angle of a certain wavelength excitation light generation SPR resonance absorption, and the SERS effect of this material and absorbing molecules effect generation under SPR resonance absorption angle.
The angle of exciting light and sample can have configurations such as 90 degree and 180 degree backward scatterings in common SERS technology, does not consider the angular relationship of SERS enhancer and SPR resonance absorption.The utility model adopts angle internal reflection spectroscopy mode to detect SPR, in evanescent field sample excitation is obtained the SERS spectrum simultaneously.Owing under SPR resonance absorption angle, can obtain bigger SERS enhancer; The utility model apparatus structure can synchronization gain SPR and the further SERS spectrum that strengthens.Because employing internal reflection spectroscopy mode to sample excitation, is measured the SERS signal under dark background in evanescent field, make non-SERS signal be suppressed, and can obtain higher SERS detection sensitivity and signal to noise ratio (S/N ratio).
The concrete structure of surface plasma body resonant vibration and surface reinforced Raman combined spectral investigator is: light-source system, comprise LASER Light Source, can adjust the optical facilities that excite angle and polarization state---angular instrument and polaroid, sample stage is the semicircle or hemispheric prism of square, the compound substrate of modifying with silver or gold with SERS activity on the bottom surface of prism.The spr signal detecting device, the SERS signal detection system of forming by spectroscope+CCD detecting device.Spr signal detecting device installation site and light-source system separation prism both sides; The SERS signal detection system places the prism base in the face of sample, receives the SERS signal that sample produces at the exciting light opposite side.
Be that variable detects the SPR spectrum with the laser incident angle during a whole set of instrument work, detect Raman spectrum at the details in a play not acted out on stage, but told through dialogues observation angle.
Angular instrument in the light-source system can adopt θ-2 θ goniometer configuration or the synchronous goniometer configuration of dicyclo; The SERS signal detection system is the polychromator+CCD detecting device of mid-focal length, also can adopt monochromator and single photon counting system.The collection of SERS signal can be adopted Lens Coupling/fibre-optical probe or microscope imaging device.
Test sample of the present utility model needs pre-service, and detected sample is at first placed (perhaps by physics chemical action absorption) and on the substrate of modifying with silver or gold with SERS activity, this substrate is fixed on a square or the hemispheric prism then;
Prism had both carried sample substrate, was again coupling exciting light and SPR and two kinds of media that spectrum takes place simultaneously of SERS.Because prism adopts square or semisphere, guarantee the invariant position of the incident light excited sample of any angle.
Device of the present utility model can also comprise employing fluid sampling system, thereby can realize the real-time detection of fluid.
The preparation of substrate need be satisfied the requirement that SPR and SERS detect two aspects.The substrate that adopts methods such as vacuum coating, nanometer assembling will be generally used for the SPR test is modified into the substrate with SERS activity, makes it not only be suitable for the SPR test but also be fit to the Surface enhanced raman spectroscopy test.Study the architectural feature at the bottom of the high SERS active group, the decorative layer that preparation has higher SERS activity makes it obtain to use in interface and surface, nanostructured analysis and chip analysis chemical research.
The experimental provision of the utility model design has some different with independent SPR spectrometer and the Raman spectroscopy instrument that background technology relates to:
(1) with traditional independently SPR spectrometer device and independently the Raman spectrometer compare, the utility model has adopted compound apparatus structure, except possessing two quasi-instruments basic function separately, also have the synchronous detection function, its unique distinction is can strengthen under the angle in resonance sample excitation is obtained SERS spectrum.
(2) with background technology in the experimental provision of the Ozaki group described compare different test purpose of the two and the differences on the method for being with maximum of the present utility model, the physical significance difference that information reflected of the two detection just.The SPR spectrum that SPR-SERS in the background technology detects in the spectrometer is at single particle or aggregation, employing be that white light source irradiation, absorption spectra mode detect, SERS spectrum is laser direct irradiation sample excitation SERS signal.And SPR spectrum of the present utility model is at the superficial film material, the reflectance spectrum under the specific absorption angle of a certain wavelength (use be laser), and SERS spectrum is the SERS signal by the evanescent field excited sample.SPR-SERS in the background technology detects SPR spectral investigation purpose reflection that spectrometer detects by the relation between single particle or single aggregation SPR absorption characteristic (this characteristic is to be caused by nano-scale) and particle surperficial enhanced propertied.And the utility model is to be used for detecting simultaneously the angle of nano metal film material to a certain wavelength excitation light generation SPR resonance absorption, and the SERS effect that this material and absorbing molecules effect produce under SPR resonance absorption angle.
(3) front surface that the angle of exciting light and sample is generally configurations such as 0-90 degree in the background technology excites, the utility model adopt to adopt the internal reflection spectroscopy mode in evanescent field to sample excitation, under dark background, measure the SERS signal, make non-SERS signal be suppressed, can obtain higher SERS detection sensitivity and signal to noise ratio (S/N ratio).
Description of drawings
Fig. 1 is that the SPR-SERS of background technology detects spectrometer
Fig. 2 is the structure principle chart of surface plasma body resonant vibration of the present utility model and surface reinforced Raman combined spectral investigator.
Embodiment
Below in conjunction with accompanying drawing SPR-SERS joint test instrument apparatus of the present utility model is further specified.
Embodiment 1
See Fig. 1,1 is light-source system, constitute by LASER Light Source 21, and be thereafter to adjust the optical facilities that excite angle and polarization state, comprise angular instrument (not drawing among Fig. 1) and polaroid 22, angular instrument can adopt θ-2 θ goniometer configuration or the synchronous goniometer configuration of dicyclo.2 is sample stage, sample stage 2 adopts the semicircle or hemispheric prism 23 of square, the compound substrate of modifying with silver or gold with SERS activity 24 on the bottom surface of prism, 25 is the modified membrane of silver or gold copper-base alloy, sample 26 is placed on the substrate 24,27 expression evanescent waves, 28 presentation surface plasma waves.4 is microscopic system, and wherein 13 is object lens, and 14 is wave filter, and 15 is polarizer, and 16 is lens, and 17 is that catoptron 18 is diaphragm, and 19 is eyepiece; 5 is the SERS signal detection system, and signal detection system comprises polychromator+CCD detecting device, adopts fibre-optical probe or microscopie unit to collect the SERS signal.6 is the spr signal detecting device.
When surface plasma body resonant vibration of the present utility model and surface reinforced Raman combined spectral investigator work, the monochromatic light that LASER Light Source 21 is sent incides the bottom surface of prism 23 through polaroid 22 vertical prisms 23 surfaces, the vertical prism of reflected light 23 symmetrical surfaces arrive spr signal detecting device 6, obtain the surface plasma resonance optical spectrum figure of sample.Monochromatic light incides the SERS signal that the transmitted light behind prism 23 bottom surfaces obtains through sample 26, is accepted by SERS signal detection system 5 through microscopic system 4, thereby obtains the Surface enhanced raman spectroscopy of sample 26.The utility model excites angle by the angular instrument change, detects SERS spectrum at SPR maximum resonance absorption point place, is maximal value in this angle SERS enhancer, promptly can the strongest SPR and the SERS spectrum of synchronization gain.
Embodiment 2
The fluid sampling system can be made of the devices such as sample cell, sample recovery pond and liquid-transport pipe-line that comprise stepper motor, be placed on prism 23 bottom surfaces.

Claims (3)

1, a kind of surface plasma body resonant vibration and surface reinforced Raman combined spectral investigator, structure have light-source system (1), sample stage (2), microscopic system (4), SERS signal detection system (5); Object lens (13), wave filter (14), polarizer (15), lens (16), catoptron (17), diaphragm (18) and eyepiece (19) are wherein arranged in the microscopic system (4); SERS signal detection system (5) comprises polychromator+CCD detecting device; It is characterized in that light-source system (1) is single LASER Light Source (21), is thereafter to adjust the optical facilities that excite angle and polarization state, comprises angular instrument and polaroid (22); Sample stage (2) is the semicircle or hemispheric prism of square (23), the compound substrate of modifying with silver or gold with SERS activity (24) on the bottom surface of prism (23), and sample (26) is placed on the substrate (24); The installation site of spr signal detecting device (6) and light-source system (1) separation prism (23) both sides; SERS signal detection system (5) places prism (23) base in the face of sample (26), receives the SERS signal that sample (26) produces at the exciting light opposite side.
According to described surface plasma body resonant vibration of claim 1 and surface reinforced Raman combined spectral investigator, it is characterized in that 2, said angular instrument adopts θ-2 θ goniometer configuration or the synchronous goniometer configuration of dicyclo; Said SERS signal detection system (5) is the monochromator and the photomultiplier single photon counting system of 320mm focal length, adopts fibre-optical probe or microscopie unit to collect the SERS signal.
3, according to claim 1 or 2 described surface plasma body resonant vibration and surface reinforced Raman combined spectral investigators, it is characterized in that also having the fluid sampling system in the structure.
CN 200520028360 2005-03-11 2005-03-11 Surface plasma resonance and surface enhanced Raman spectroscopy tester Expired - Lifetime CN2784921Y (en)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101566568B (en) * 2009-05-27 2011-01-05 厦门大学 Surface plasma coupling fluorescence detection apparatus
CN103487426A (en) * 2013-09-18 2014-01-01 胡建明 Detection method and device for high-sensitivity and high-reproducibility surface enhanced Raman spectroscopy
CN105628655A (en) * 2015-12-24 2016-06-01 温州生物材料与工程研究所 Optical microscope based on surface plasma resonance
CN108037107A (en) * 2017-12-04 2018-05-15 中国科学院长春光学精密机械与物理研究所 A kind of sync detection device

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101566568B (en) * 2009-05-27 2011-01-05 厦门大学 Surface plasma coupling fluorescence detection apparatus
CN103487426A (en) * 2013-09-18 2014-01-01 胡建明 Detection method and device for high-sensitivity and high-reproducibility surface enhanced Raman spectroscopy
CN103487426B (en) * 2013-09-18 2015-12-23 胡建明 The detection method of highly sensitive, high reappearance Surface enhanced raman spectroscopy and device
CN105628655A (en) * 2015-12-24 2016-06-01 温州生物材料与工程研究所 Optical microscope based on surface plasma resonance
CN105628655B (en) * 2015-12-24 2019-05-07 温州生物材料与工程研究所 A kind of optical microscopy based on surface plasma body resonant vibration
CN108037107A (en) * 2017-12-04 2018-05-15 中国科学院长春光学精密机械与物理研究所 A kind of sync detection device

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C14 Grant of patent or utility model
GR01 Patent grant
AV01 Patent right actively abandoned

Effective date of abandoning: 20090610

C25 Abandonment of patent right or utility model to avoid double patenting